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Combined Minimum-Run Resolution IV and Central Composite Design for Optimized Removal of the Tetracycline Drug Over Metal–Organic Framework-Templated Porous Carbon

机译:最小运行分辨率IV和中央组合设计的组合可优化以金属-有机骨架为模板的多孔碳去除四环素药物

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摘要

In this study, a minimum-run resolution IV and central composite design have been developed to optimize tetracycline removal efficiency over mesoporous carbon derived from the metal-organic framework MIL-53 (Fe) as a self-sacrificial template. Firstly, minimum-run resolution IV, powered by the Design–Expert program, was used as an efficient and reliable screening study for investigating a set of seven factors, these were: tetracycline concentration (A: 5–15 mg/g), dose of mesoporous carbons (MPC) (B: 0.05–0.15 g/L), initial pH level (C: 2–10), contact time (D: 1–3 h), temperature (E: 20–40 °C), shaking speed (F: 150–250 rpm), and Na+ ionic strength (G: 10–90 mM) at both low (−1) and high (+1) levels, for investigation of the data ranges. The 20-trial model was analyzed and assessed by Analysis of Variance (ANOVA) data, and diagnostic plots (e.g., the Pareto chart, and half-normal and normal probability plots). Based on minimum-run resolution IV, three factors, including tetracycline concentration (A), dose of MPC (B), and initial pH (C), were selected to carry out the optimization study using a central composite design. The proposed quadratic model was found to be statistically significant at the 95% confidence level due to a low P-value (<0.05), high R2 (0.9078), and the AP ratio (11.4), along with an abundance of diagnostic plots (3D response surfaces, Cook’s distance, Box-Cox, DFFITS, Leverage versus run, residuals versus runs, and actual versus predicted). Under response surface methodology-optimized conditions (e.g., tetracycline concentration of 1.9 mg/g, MPC dose of 0.15 g/L, and pH level of 3.9), the highest tetracycline removal efficiency via confirmation tests reached up to 98.0%–99.7%. Also, kinetic intraparticle diffusion and isotherm models were systematically studied to interpret how tetracycline molecules were absorbed on an MPC structure. In particular, the adsorption mechanisms including “electrostatic attraction” and “π–π interaction” were proposed.
机译:在这项研究中,已开发了最小运行分辨率IV和中心复合设计,以优化四环素的去除效率,以优于以金属-有机骨架MIL-53(Fe)为自我牺牲模板的中孔碳。首先,由Design-Expert程序提供支持的最低运行分辨率IV作为有效可靠的筛选研究,用于研究以下七个因素:四环素浓度(A:5-15 mg / g),剂量介孔碳(MPC)(B:0.05–0.15 g / L),初始pH值(C:2–10),接触时间(D:1–3 h),温度(E:20–40°C),振动速度(F:150–250 rpm)和Na + 离子强度(G:10–90 mM)在低(-1)和高(+1)水平下进行研究数据范围。通过方差分析(ANOVA)数据和诊断图(例如帕累托图以及半正态和正态概率图)分析和评估20试验模型。基于最小运行分辨率IV,选择了三个因素,包括四环素浓度(A),MPC剂量(B)和初始pH(C),以使用中央复合设计进行优化研究。由于P值(<0.05)低,R 2 (0.9078)高和AP比率(11.4),因此该建议的二次模型在95%置信水平上具有统计学意义。以及大量的诊断图(3D响应面,库克距离,Box-Cox,DFFITS,杠杆与运行,残差与运行以及实际与预测)。在响应面方法优化的条件下(例如,四环素浓度为1.9 mg / g,MPC剂量为0.15 g / L,pH值为3.9),通过确认测试获得的最高四环素去除效率达到98.0%–99.7%。此外,系统地研究了动态粒子内扩散和等温线模型,以解释四环素分子如何在MPC结构上吸收。特别地,提出了包括“静电吸引”和“π-π相互作用”的吸附机理。

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